Study on optimal ratio of water and light based on time-series production simulation model of hydro-optical power system
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(1.School of Water Resources and Hydropower Engineering, North China Electric Power University, Beijing 102206, China;2.Suzhou Institute of North China Electric Power University, Suzhou 215123, China;3.Huaneng Lancang River Hydropower Inc., Kunming 650214, China )

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    Abstract:

    Based on the time-series production simulation method which takes into account the time-series variation characteristics of system load and power generation output of new energy, the time-series production simulation model of hydro-optical power system is established. The optimal water-light capacity ratio is determined comprehensively from the aspects of system structure, economy, flexibility and reliability, and the rationality of the model is verified by the water-light system of the upper reaches of the Jinsha River in the Sichuan-Tibet section. The outputs of photovoltaic power stations and hydropower stations in the upper reaches of the Jinsha River are complementary within a year and within a day. For the level year of 2030, considering the retention of hydropower during dry period, the comprehensive performance of 9.136 million kW hydropower with 4 million kW photovoltaic is better, and the new non-water renewable electricity is about 6 billion kW·h.

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李继清,龙健,刘洋.基于水光电力系统时序生产模拟模型的水光优化配比研究[J].河海大学学报(自然科学版),2024,52(1):1-10, 69.(LI Jiqing, LONG Jian, LIU Yang. Study on optimal ratio of water and light based on time-series production simulation model of hydro-optical power system[J]. Journal of Hohai University (Natural Sciences),2024,52(1):1-10, 69.(in Chinese))

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History
  • Received:June 06,2023
  • Revised:
  • Adopted:
  • Online: January 18,2024
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